Immune-Modulating Lipid Nanomaterials for the Delivery of Biopharmaceuticals
Abstract
:1. Introduction
2. Design of Lipid Nanoparticles
2.1. Typical Composition
2.2. Composition for Ionizable LNP
3. Lipid Nanoparticles for Biopharmaceutical Delivery
4. Target Organs of Lipid Nanoparticles
5. Immune-Modulating Lipid Nanoparticles
5.1. siRNA-LNP
5.2. Gene-Editing LNP
5.3. mRNA-LNP
5.4. Cyclic Di-Nucleotide-LNP
5.5. Peptide-LNP
6. Challenges and Perspectives
7. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Category | Cargo | Disease | Mode of Action | LNP Type | Ref. |
---|---|---|---|---|---|
Immune cell activation | Heme-oxygenase-1-targeting siRNA | Metastatic melanoma | Heme oxygenase-1 silencing PD-L1 blockade | iLNP | [43] |
Amyloid-β (Aβ) peptide, rapamycin | Alzheimer’s Disease | Generation of Aβ-specific Th cells and Treg cells | Cationic liposomes | [44] | |
E7, CD70, CD40L, TLR4 mRNA | Cervical cancer | Antigen-specific CD8 T cell response | iLNP | [45] | |
CD47- and PD-L1-targeting siRNA | Glioblastoma multiforme | Simultaneous silencing of CD47 and PD-L1 | Cationic liposomes | [46] | |
Cyclic di-GMP | Lymphoma, breast cancer | STING pathway activation CTLA4 blockade | Cationic liposomes | [47] | |
Cyclic GMP-AMP | Malignant pleural effusion in lung cancer | STING pathway activation PD-L1 blockade | Anionic liposomes | [48] | |
Interferon-gamma-targeting siRNA | Inflammatory bowel disease | Interferon gamma silencing | iLNP | [49] | |
mRNA-encoding human fibroblast growth factor 21, steroid prodrug | - | Anti-inflammatory response | iLNP | [31] | |
Polo-like kinase 1 and CD45 siRNA | - | Leukocyte-selective targeting | iLNP | [30] | |
mRNA-encoding CD19-targeting CAR bearing the CD3ζ and 4–1BB costimulatory domains | Leukemia | CD19-targeting CAR expression in T cells | iLNP | [50] | |
Vaccination | EVM158 mRNA | Mousepox | Antigen-specific CD8 T cell response | cLNP | [23] |
plasmid DNA encoding TGF-β single guide RNA and Cas9 protein | Melanoma | Transforming growth factor-β editing In situ vaccination of tumor-associated antigens | Cationic liposomes | [51] | |
Self-amplifying RNA (saRNA) encoding the influenza hemagglutinin glycoprotein, SARS-CoV-2 spike protein | Influenza | Antigen-specific humoral and cellular response | iLNP | [25] | |
mRNA encoding neoantigen | Lewis lung carcinoma | Antigen-specific cellular response | Cationic liposomes | [40] | |
siRNA encoding the rabies virus glycoprotein | Rabies | Antigen-specific humoral and cellular response | cLNP | [33] |
Brand Name | Cargo | Indication | Year | Company |
---|---|---|---|---|
Spikevax | mRNA | COVID-19 | 2020 | Moderna (Cambridge, MA, USA) |
Comirnaty | mRNA | COVID-20 | 2020 | Pfizer-BioNTech (New York, NY, USA) |
ONPATTRO | siRNA | Hereditary transthyretin-mediated amyloidosis | 2018 | Alnylam (Cambridge, MA, USA) |
VYXEOS | Cytarabine/ daunorubicin | Acute myeloid leukemia | 2017 | Jazz Pharmaceuticals (Dublin, Ireland) |
Onivyde | Irinotecan | Metastatic pancreatic cancer | 2015 | Merrimack (North Andover, MA, USA) |
Marqibo | Vincristine | Philadelphia chromosome-negative acute lymphoblastic leukemia | 2012 | Spectrum (Reno, NV, USA) |
Definity | Perflutren | Ultrasound enhancement for patients with suboptimal echocardiograms | 2001 | Lantheus Medical Imaging (North Billerica, MA, USA) |
Visudyne | Verteporfin | Predominantly classic subfoveal choroidal neovascularization in patients with age-related macular degeneration (AMD), pathologic myopia, presumed ocular histoplasmosis | 2000 | Xediton Pharmaceuticals (Mississauga, ON, Canada) |
AmBisome | Amphotericin B | A variety of serious fungal infections | 1997 | Gilead Sciences (Foster City, CA, USA) |
DaunoXome | Daunorubicin | First-line therapy against advanced Kaposi’s sarcoma associated with HIV | 1996 | Galen (Craigavon, UK) |
Doxil | Doxorubicin | Ovarian cancer, AIDS-related Kaposi sarcoma, and multiple myeloma | 1995 | Janssen (Beerse, Belgium) |
Diprivan | Propofol | A sedative–hypnotic agent | 1989 | Fresenius Kabi (vor der Höhe, Germany) |
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Kim, S.; Choi, B.; Kim, Y.; Shim, G. Immune-Modulating Lipid Nanomaterials for the Delivery of Biopharmaceuticals. Pharmaceutics 2023, 15, 1760. https://doi.org/10.3390/pharmaceutics15061760
Kim S, Choi B, Kim Y, Shim G. Immune-Modulating Lipid Nanomaterials for the Delivery of Biopharmaceuticals. Pharmaceutics. 2023; 15(6):1760. https://doi.org/10.3390/pharmaceutics15061760
Chicago/Turabian StyleKim, Songhee, Boseung Choi, Yoojin Kim, and Gayong Shim. 2023. "Immune-Modulating Lipid Nanomaterials for the Delivery of Biopharmaceuticals" Pharmaceutics 15, no. 6: 1760. https://doi.org/10.3390/pharmaceutics15061760
APA StyleKim, S., Choi, B., Kim, Y., & Shim, G. (2023). Immune-Modulating Lipid Nanomaterials for the Delivery of Biopharmaceuticals. Pharmaceutics, 15(6), 1760. https://doi.org/10.3390/pharmaceutics15061760